Saturday, 22 October 2011

Bacaan Lebih Lanjut Mengenai Teori Adi Dawai





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Tuesday, 18 October 2011

The Science Behind The 2011 Nobel Prize in Physics

"Nothing will stop us. The road to the stars is steep and dangerous. But we're not afraid . . . Space flights can't be stopped. This isn't the work of one man or even a group of men. It is a historical process which mankind is carrying out in accordance with the natural laws of human development."

— Yuri Gagarin, regards the first death in space (Vladimir Komarov), 1967.


Delve deeper into the enigma of dark energy. These sections will give you an even closer look at the importance of dark energy, theories about its existence, and the techniques and historical background that led into its discovery.



1.What Is Dark Energy? Does it give us answers — or just reveal more questions?     


2.Fate of the Universe Will dark energy eventually tear the universe's atoms apart?  



3. Type Ia Supernovae How exploding stars help measure the cosmos





4. Out of Space, Back in Time How can we see what happened in the early universe?



5. Did Einstein Predict Dark Energy? He called it his "biggest blunder." But was it?




6.  Related Links Find more topical dark energy information  



7. Credits Special thanks to these contributors  


 

The Nobel Prize in Physics 2011

Saul Perlmutter, Brian P. Schmidt, Adam G. Riess

The Nobel Prize in Physics 2011 was divided, one half awarded to Saul Perlmutter, the other half jointly to Brian P. Schmidt and Adam G. Riess "for the discovery of the accelerating expansion of the Universe through observations of distant supernovae".

 

Saul Perlmutter
Brian P. Schmidt


Written in the stars

(Photo by: Whisnu Trie Seno Ajie, Indonesia University of Education,
Former President at Cakrawala Asto Club)

"Some say the world will end in fire, some say in ice..." 
~Robert Frost, Fire and Ice, 1920~


What will be the final destiny of the Universe? 

Probably it will end in ice, if we are to believe this year's Nobel Laureates in Physics. They have studied several dozen exploding stars, called supernovae, and discovered that the Universe is expanding at an ever-accelerating rate. The discovery came as a complete surprise even to the Laureates themselves.

In 1998, cosmology was shaken at its foundations as two research teams presented their findings. Headed by Saul Perlmutter, one of the teams had set to work in 1988. Brian Schmidt headed another team, launched at the end of 1994, where Adam Riess was to play a crucial role.

The research teams raced to map the Universe by locating the most distant supernovae. More sophisticated telescopes on the ground and in space, as well as more powerful computers and new digital imaging sensors (CCD, Nobel Prize in Physics in 2009), opened the possibility in the 1990s to add more pieces to the cosmological puzzle.

The teams used a particular kind of supernova, called type Ia supernova. It is an explosion of an old compact star that is as heavy as the Sun but as small as the Earth. A single such supernova can emit as much light as a whole galaxy. All in all, the two research teams found over 50 distant supernovae whose light was weaker than expected - this was a sign that the expansion of the Universe was accelerating. The potential pitfalls had been numerous, and the scientists found reassurance in the fact that both groups had reached the same astonishing conclusion.

For almost a century, the Universe has been known to be expanding as a consequence of the Big Bang about 14 billion years ago. However, the discovery that this expansion is accelerating is astounding. If the expansion will continue to speed up the Universe will end in ice.

The acceleration is thought to be driven by dark energy, but what that dark energy is remains an enigma - perhaps the greatest in physics today. What is known is that dark energy constitutes about three quarters of the Universe. Therefore the findings of the 2011 Nobel Laureates in Physics have helped to unveil a Universe that to a large extent is unknown to science. And everything is possible again.

Read more about this year's prize
Information for the Public
Pdf 4,9 MB
Scientific Background
Pdf 1 MB
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Links and Further Reading



1. Saul Perlmutter, U.S. citizen. Born 1959 in Champaign-Urbana, IL, USA. Ph.D. 1986 from University of California, Berkeley, USA. Head of the Supernova Cosmology Project, Professor of Astrophysics, Lawrence Berkeley National Laboratory and University of California, Berkeley, CA, USA.
www.physics.berkeley.edu/research/faculty/perlmutter.html

2. Brian P. Schmidt, U.S. and Australian citizen. Born 1967 in Missoula, MT, USA. Ph.D. 1993 from Harvard University, Cambridge, MA, USA. Head of the High-z Supernova Search Team, Distinguished Professor, Australian National University, Weston Creek, Australia.
msowww.anu.edu.au/~brian/

3. Adam G. Riess, U.S. citizen. Born 1969 in Washington, DC, USA. Ph.D. 1996 from Harvard University, Cambridge, MA, USA. Professor of Astronomy and Physics, Johns Hopkins University and Space Telescope Science Institute, Baltimore, MD, USA.
www.stsci.edu/~ariess/
Prize amount: SEK 10 million, with one half to Saul Perlmutter and the other half to be shared equally between Brian Schmidt and Adam Riess.

Contact persons: Erik Huss, Press Officer, Phone +46 8 673 95 44, mobile +46 70 673 96 50, erik.huss@kva.se
Annika Moberg, Editor, Phone +46 8 673 95 22, Mobile +46 70 673 96 90, annika.moberg@kva.se



"Aku sadar bahwa ada keindahan lain yang memukau di Alam Semesta ini selain dari 'Cinta' "
~Arip~


Sources:

1. http://hubblesite.org/
2. http://www.nobelprize.org/nobel_prizes/physics/laureates/2011/#

Monday, 17 October 2011

Einstein the Realist

"Realita dan Bukan Realita adalah perspektif pikiran manusia itu sendiri, ini adalah semata-mata apa yang ditangkap oleh indrawi manusia belaka, karena yang ada akhirnya akan tiada"
~Arip~

By: Prof. David Deutsch, Ph. D.
(University of Oxford)
The Author is:

Visiting Professor of Physics and a founder member of the Centre for Quantum Computation at The Clarendon Laboratory, University of Oxford, and author of The Fabric of Reality and The Beginning of Infinity.

 


“Imagination is more important than knowledge. For knowledge is limited to all we now know and understand, while imagination embraces the entire world, and all there ever will be to know and understand.”

~Albert Einstein~



OXFORD – It was recently discovered that the universe’s expansion is accelerating, not slowing, as was previously thought. Light from distant exploding stars revealed that an unknown force (dubbed “dark energy”) more than outweighs gravity on cosmological scales.



Unexpected by researchers, such a force had nevertheless been predicted in 1915 by a modification that Albert Einstein proposed to his own theory of gravity, the general theory of relativity. But he later dropped the modification, known as the “cosmological term,” calling it the “biggest blunder” of his life.



So the headlines proclaim: “Einstein was right after all,” as though scientists should be compared as one would clairvoyants: Who is distinguished from the common herd by knowing the unknowable – such as the outcome of experiments that have yet to be conceived, let alone conducted? Who, with hindsight, has prophesied correctly?

But science is not a competition between scientists; it is a contest of ideas – namely, explanations of what is out there in reality, how it behaves, and why. These explanations are initially tested not by experiment but by criteria of reason, logic, applicability, and uniqueness at solving the mysteries of nature that they address. Predictions are used to test only the tiny minority of explanations that survive these criteria.



The story of why Einstein proposed the cosmological term, why he dropped it, and why cosmologists today have reintroduced it illustrates this process. Einstein sought to avoid the implication of unmodified general relativity that the universe cannot be static – that it can expand (slowing down, against its own gravity), collapse, or be instantaneously at rest, but that it cannot hang unsupported.



This particular prediction cannot be tested (no observation could establish that the universe is at rest, even if it were), but it is impossible to change the equations of general relativity arbitrarily. They are tightly constrained by the explanatory substance of Einstein’s theory, which holds that gravity is due to the curvature of spacetime, that light has the same speed for all observers, and so on.



But Einstein realized that it is possible to add one particular term – the cosmological term – and adjust its magnitude to predict a static universe, without spoiling any other explanation. All other predictions based on the previous theory of gravity – that of Isaac Newton – that were testable at the time were good approximations to those of unmodified general relativity, with that single exception: Newton’s space was an unmoving background against which objects move. There was no evidence yet, contradicting Newton’s view – no mystery of expansion to explain. Moreover, anything beyond that traditional conception of space required a considerable conceptual leap, while the cosmological term made no measurable difference to other predictions. So Einstein added it.



Then, in 1929, Edwin Hubble discovered that the universe is expanding, consistently (within the observational accuracy of the day) with unmodified general relativity. So Einstein dropped the cosmological term. His doing so had nothing to do with Hubble being less blunder-prone; nor was Einstein deferring to Hubble’s superior prophetic abilities. It was just that the problem that the term was intended to solve no longer existed.



The new observations did not refute the existence of a cosmological term. They merely made it a bad explanation. Then, in 1998, came those new observations of a universe whose expansion is accelerating. As a result, the cosmological term that has been “reinstated” to account for the new observations is not quite the one that Einstein proposed and retracted. It is larger, for it now has to explain not just why the universe isn’t collapsing, but why its expansion is accelerating.



Einstein’s remark about having “blundered” is as misleading as the idea that he is “right after all.” The cosmological term is not something that should never have been proposed. Its introduction represented progress in understanding reality – as did its abandonment in light of Hubble’s discovery and its reinstatement in revised form to account for the new observations.



Likewise, the mid-twentieth century “Bohr-Einstein debate” about quantum theory is often misinterpreted as a personal clash between wizards. So counter-intuitive are quantum theory’s predictions that, under the leadership of one of its pioneers, Neils Bohr, a myth grew that there is no underlying reality that explains them. Particles get from A to B without passing through the intervening space, where they have insufficient energy to exist; they briefly “borrow” the energy, because we are “uncertain” about what their energy is. Information gets from A to B without anything passing in between – what Einstein called “spooky action at a distance.” And so on.



What these paradoxical interpretations have in common is that they abandon realism, the doctrine that a physical world, existing in reality, accounts for all of our experience. Anti-realism remains popular and appears in various guises in textbooks and popular accounts of quantum theory. But Einstein insisted that physical phenomena have explanations in terms of what he called “elements of reality.”



Fortunately, a minority of physicists, myself included, likewise side unequivocally with realism, by adopting Hugh Everett’s multiple-universes interpretation of quantum theory. According to this view, no particles exist where they have insufficient energy to be; it is simply that in some universes they have more energy than average, and in others, less. All alleged “paradoxes” of quantum theory are similarly resolved.



So, while most accounts say that Bohr won the debate, my view is that Einstein, as usual, was seeking an explanation of reality, while his rivals were advocating nonsense. Everett’s interpretation doesn’t make Einstein a demigod. But it does make him right.



Copyright: Project Syndicate, 2011.
www.project-syndicate.org